An electro-hydraulic control unit for a vehicle brake system includes a hydraulic control unit including an HCU block defining a motor bore containing an electric motor and an eccentric chamber containing a rotating eccentric driven by the electric motor. The HCU block also defines a pump bore containing a piston pump including a piston rod having a generally cylindrical shape with a smooth exterior surface extending substantially its entire length. An end cap is press fit around an end of the piston rod and includes a flange portion extending annularly outwardly for engaging a return spring. A piston guide includes a tubular portion guiding the piston rod and a shoulder for engaging the return spring. A throat of the piston guide holds a gland seal surrounding the piston rod. An outlet valve housing includes a tubular protrusion extending into the throat of the piston guide to hold the gland seal.
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20. A hydraulic control unit comprising:
an HCU block defining an eccentric chamber containing a rotating eccentric, said HCU block defining a motor bore having a cylindrical shape extending along a motor axis to a floor and containing an electric motor for driving said rotating eccentric via a motor shaft;
wherein said electric motor includes a motor housing having a side wall with a generally cylindrical shape extending along said motor axis between a base end and a power end;
a motor sleeve secured to said motor housing and including an annular ring extending radially outwardly adjacent said power end of said motor housing for engaging said floor of said motor bore;
wherein said HCU block defines a staked lip within said motor bore with said annular ring of said motor sleeve secured between said staked lip and said floor of said motor bore to securely hold said electric motor within said motor bore.
14. A hydraulic control unit comprising:
an HCU block defining an eccentric chamber containing a rotating eccentric and defining a pump bore extending transversely from a face of said HCU block along a pump axis intersecting said eccentric chamber;
a piston pump including a piston rod and an outlet valve housing defining an outlet valve seat for receiving an outlet closing member separating a pumping chamber from an outlet fluid chamber;
an outlet spring retainer defining an internal ledge facing said eccentric chamber for engaging an outlet valve spring configured to bias said outlet closing member into said outlet valve seat, said outlet spring retainer including a plurality of tapered posts extending axially away from said eccentric chamber to engage an outlet cap for holding said piston pump in said pump bore of said HCU block; and
wherein said tapered posts are configured to deform by a predetermined amount during assembly.
11. A hydraulic control unit comprising:
an HCU block defining an eccentric chamber containing a rotating eccentric;
a piston rod having a generally cylindrical shape extending along a pump axis between a first end and a second end and including a smooth exterior surface extending substantially the entire length between said first end and said second end;
an end cap disposed around said first end of said piston rod adjacent said rotating eccentric said end cap fixed to move axially with said piston rod and including a flange portion extending annularly outwardly from said piston rod;
a piston guide defining a first shoulder extending annularly and radially outwardly and facing toward said eccentric chamber;
said piston guide including a first tubular portion with a first inner surface having a cylindrical shape receiving said piston rod and allowing said piston rod to translate freely only in an axial direction;
a return spring extending between said first shoulder of said piston guide and said flange portion of said end cap for biasing said piston rod axially toward said rotating eccentric.
1. A hydraulic control unit comprising:
an HCU block defining an eccentric chamber containing a rotating eccentric;
a piston guide including a first tubular portion extending along a pump axis with a first inner surface having a cylindrical shape receiving a piston rod and allowing said piston rod to translate freely only in an axial direction, said first tubular portion having a first outer surface with a generally cylindrical shape with a return spring disposed thereabout,
said piston guide including a base surface extending annularly and radially outwardly from said first inner surface and facing away from said eccentric chamber, with a second tubular portion extending axially from said base surface opposite said first tubular portion and including a second inner surface having a cylindrical shape and radially spaced apart from said piston rod to define a first throat therebetween; and
a gland seal disposed in said first throat of said piston guide surrounding said piston rod to prevent leakage thereabout as said piston rod moves axially therethrough; and
wherein said piston rod has a generally cylindrical shape extending along said pump axis between a first end and a second end, said piston rod having a smooth exterior surface extending substantially the entire length between said first end and said second end.
2. The hydraulic control unit as set forth in
wherein said end cap includes a flange portion extending annularly outwardly from said piston rod for engaging said return spring.
3. The hydraulic control unit as set forth in
an outlet valve housing defining a pumping chamber for receiving said piston rod, said outlet valve housing defining an annular ledge extending radially outwardly and facing toward said eccentric chamber;
said outlet valve housing including a tubular protrusion extending axially from said annular ledge toward said eccentric chamber and into said first throat of said piston guide for holding said gland seal at a fixed position in said first throat.
4. The hydraulic control unit as set forth in
wherein said gland seal also includes a backup washer disposed adjacent said O-ring and having a generally flat shape extending annularly about said piston rod and radially outwardly to said second inner surface of said piston guide.
5. The hydraulic control unit as set forth in
6. The hydraulic control unit as set forth in
a pump sump including a sump bore having a cylindrical shape extending into said HCU block transverse to said pump axis and intersecting said eccentric chamber and including a sump cover disposed within said sump bore adjacent a face of said HCU block; and
wherein said sump cover is identical to an outlet cap enclosing a pump bore of the hydraulic control unit.
7. The hydraulic control unit as set forth in
wherein said electric motor includes a motor housing having a side wall with a generally cylindrical shape extending along said motor axis between a base end and a power end, with each of said base end and said power end extending parallel to one another and perpendicular to said motor axis, and with said power end surrounding an output bushing for rotatably supporting said motor shaft.
8. The hydraulic control unit as set forth in
a mounting plate secured to said power end of said motor housing with a plurality of second fasteners; and
wherein said HCU block defines a staked lip within said motor bore with said mounting plate secured between said staked lip and said floor of said motor bore to securely hold said electric motor within said motor bore.
9. The hydraulic control unit as set forth in
a spacer ring for locating said electric motor centrally within said motor bore and with said motor shaft centered along said motor axis, said spacer ring having a ring shape including an inner surface surrounding and engaging said output bushing of said motor housing, said spacer ring having a discontinuous outer surface configured to engage an annular inner wall of said HCU block extending parallel to said motor axis beyond said floor toward said eccentric chamber.
10. The hydraulic control unit as set forth in
a motor sleeve having a generally cylindrical shape surrounding said side wall of said motor housing and including an annular ring extending radially outwardly adjacent to said power end of said motor housing for engaging said floor of said motor bore;
wherein said motor sleeve is secured to said motor housing by resistance or laser welding;
wherein said HCU block defines a staked lip within said motor bore with said annular ring of said motor sleeve secured between said staked lip and said floor of said motor bore to securely hold said electric motor within said motor bore.
12. The hydraulic control unit as set forth in
the hydraulic control unit further comprises a gland seal disposed in said first throat of said piston guide surrounding said piston rod to prevent leakage thereabout as said piston rod moves axially therethrough.
13. The hydraulic control unit as set forth in
an inlet check valve disposed in an inlet valve bore of said HCU block to allow fluid flow into said piston pump while preventing fluid flow in a reverse direction and including an inlet valve housing defining an inlet valve seat for sealingly receiving an inlet closing member;
an accumulator assembly disposed within an accumulator bore having a generally cylindrical shape extending into said HCU block transverse to said pump axis, said accumulator assembly including an accumulator piston with a coil spring biasing said accumulator piston away from an accumulator cap disposed in said accumulator bore adjacent a face of said HCU block; and
wherein said inlet valve bore is formed coaxial with said accumulator bore and wherein said inlet valve bore has a smaller diameter than said accumulator bore and extends axially therefrom away from said face of said HCU block.
15. The hydraulic control unit as set forth in
16. The hydraulic control unit as set forth in
17. The hydraulic control unit as set forth in
18. The hydraulic control unit as set forth in
a piston guide including a first tubular portion having a first inner surface with a cylindrical shape for receiving a piston rod and said first tubular portion having a first outer surface with a generally cylindrical shape with a return spring disposed thereabout for biasing said piston rod into contact with said rotating eccentric.
19. The hydraulic control unit as set forth in
the hydraulic control unit further comprises a gland seal disposed in said first throat of said piston guide surrounding said piston rod to prevent leakage thereabout as said piston rod moves axially therethrough.
21. The hydraulic control unit as set forth in
22. The hydraulic control unit as set forth in
23. The hydraulic control unit as set forth in
24. The hydraulic control unit as set forth in
a rubber damper disposed within said recess.
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This U.S. utility patent application claims the benefit of U.S. Provisional Patent Application Ser. No. 62/750,177 filed Oct. 24, 2018 entitled “Hydraulic Control Unit with Piston Pump”. This application also claims the benefit of Chinese Patent Application No. 201910725302.8 filed on Aug. 7, 2019, and Chinese patent application no. 201910994687.8 filed on Oct. 18, 2019. The content of which are incorporated herein by reference in their entirety.
The present invention relates to a hydraulic control unit of an electro-hydraulic control unit for a vehicle brake system.
It is generally known in the field of electro-hydraulic control units for vehicle brake systems to include a hydraulic control unit with a piston pump. Conventional piston pumps include a piston rod extending through a piston guide, and which is moved axially by a rotating eccentric driven by an electric motor. Conventional piston pumps may include a female gland seal held in a fixed position surrounding the piston rod as the piston rod moves therethrough. An example of such an assembly is disclosed in U.S. Pat. No. 6,866,489.
The present disclosure provides for a hydraulic control unit (HCU) including an HCU block defining an eccentric chamber containing a rotating eccentric. The hydraulic control unit also includes a piston guide having a first tubular portion that extends along a pump axis with a cylindrical first inner surface receiving a piston rod for allowing the piston rod to translate freely only in an axial direction. The first tubular portion also has a generally cylindrical first outer surface with a return spring disposed thereabout. The piston guide includes a base surface extending annularly and radially outwardly from the first inner surface and faces away from the eccentric chamber. A second tubular portion of the piston guide extends axially from the base surface opposite the first tubular portion and includes a cylindrical second inner surface, which is radially spaced apart from the piston rod to define a first throat therebetween. A gland seal is disposed in the first throat of the piston guide, surrounding the piston rod, to prevent leakage thereabout as the piston rod moves axially therethrough.
In accordance with another aspect of the disclosure, a hydraulic control unit includes an HCU block defining an eccentric chamber containing a rotating eccentric. A generally cylindrical piston rod extends along a pump axis between a first end and a second end, and has a smooth exterior surface extending substantially the entire length between the first end and the second end. An end cap is disposed around the first end of the piston rod adjacent the rotating eccentric and is fixed to move axially with the piston rod. The end cap includes a flange portion extending annularly outwardly from the piston rod. The hydraulic control unit also includes a piston guide defining a first shoulder extending annularly and radially outwardly and facing toward the eccentric chamber. The piston guide further includes a first tubular portion with a cylindrical first inner surface receiving the piston rod and allowing the piston rod to translate freely only in an axial direction. A return spring extends between the first shoulder of the piston guide and the flange portion of the end cap for biasing the piston rod axially toward the rotating eccentric.
In accordance with another aspect of the disclosure, a hydraulic control unit includes an HCU block defining an eccentric chamber containing a rotating eccentric. The HCU block defines a pump bore extending transversely from a face of the HCU block along a pump axis intersecting the eccentric chamber. The hydraulic control unit also includes a piston pump including a piston rod and an outlet valve housing defining an outlet valve seat for receiving an outlet closing member separating a pumping chamber from an outlet fluid chamber. An outlet spring retainer defines an internal ledge facing the eccentric chamber for engaging an outlet valve spring configured to bias the outlet closing member into the outlet valve seat. The outlet spring retainer also includes a plurality of tapered posts extending axially away from the eccentric chamber to engage an outlet cap for holding the piston pump in the pump bore of the HCU block. The tapered posts are configured to deform by a predetermined amount during assembly.
The subject invention provides for several advantages over the prior art. It provides for a hydraulic control unit design that is versatile to be used in different configurations and arrangements with one or more piston pumps driven by a common electric motor. It provides a piston pump that may be optimized for relatively low fluid flows, such as for motorcycle applications. It also provides several advantages for manufacturability, including a piston rod having a smooth external surface, and an external gland seal that is secured within the first throat of the piston rod. This design allows the pump assembly to be assembled and tested separate from the rest of the hydraulic control unit before being installed in the pump bore of the HCU block.
Other advantages of the present invention will be readily appreciated, as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings wherein:
Referring to the Figures, wherein like numerals indicate corresponding parts throughout the several views, an electro-hydraulic control unit 10 for a vehicle brake system is generally shown in
The hydraulic control unit 30 includes an HCU block 32 of solid metal material, as illustrated in
As shown in
As shown in cross-section on
The HCU block 32 also defines a pump bore 66 containing a piston pump 68 of the hydraulic control unit 30. The pump bore 66 extends transversely from one of the side faces 34 along a pump axis 70 intersecting the eccentric chamber 50. The pump bore 66 includes a plurality of bore sections 72, 74, 76, 78, each having a cylindrical shape with progressively larger radius moving axially outwardly from the eccentric chamber 50.
In the example embodiments shown in
As best shown in
As best shown in
The piston guide 90 includes a first tubular portion 96 with a first inner surface 98 having a cylindrical shape receiving the piston rod 80 and allowing the piston rod 80 to translate freely only in an axial direction. In other words, the first tubular portion 96 allows the piston rod 80 to reciprocate axially, while restricting it from moving or tilting in other directions. The first tubular portion 96, therefore, provides the “guiding” function for the piston rod 80. The first tubular portion 96 has a first outer surface 100 with a generally cylindrical shape with the return spring 94 disposed thereabout, and with the first outer surface 100 spaced apart from the HCU block 32 with the return spring 94 extending therebetween.
As also shown in
A gland seal 120 is disposed in the first throat 112 of the piston guide 90. The gland seal 120 includes a first O-ring 122 sealingly surrounding the piston rod 80 to prevent leakage thereabout as the piston rod 80 moves axially therethrough for pumping the fluid. The gland seal 120 also includes an optional backup washer 124 disposed on either side of the first O-ring 122 and adjacent thereto. Each of the optional backup washers 124 have a generally flat shape extending annularly about the piston rod 80 and radially outwardly to the second inner surface 110 of the piston guide 90. The depth of the first throat 112 may be adjusted according to the number of optional backup washers 124 employed.
The piston pump 68 also includes an outlet valve housing 130 disposed in the pump bore 66. The outlet valve housing 130 has a generally tubular shape defining a pumping chamber 132 for receiving the piston rod 80 and having a volume that varies as the piston rod 80 moves axially within the pumping chamber 132. As shown in
The outlet valve housing 130 also defines an outlet valve seat 140 extending annularly about the pump axis 70 for receiving an outlet closing member 142 separating the pumping chamber 132 from an outlet fluid chamber 144. The outlet closing member 142 in the example embodiment is a metal ball. However, the outlet closing member may be conical, frusto-conical, or another shape, and may be made of any suitable material. The outlet closing member 142 is biased into sealing engagement with the outlet valve seat 140 by an outlet valve spring 146 to provide a closing force and to prevent fluid from communicating from the outlet fluid chamber 144 into the pumping chamber 132. The outlet valve spring 146 is illustrated as a coil spring, however other types of springs may be used including, for example, a flexible beam or bar, or a spring formed as a dome or a wave. The outlet closing member 142 is movable off of the outlet valve seat 140 by fluid pressure in opposition to the closing force from the outlet valve spring 146 to allow fluid to communicate out of the pumping chamber 132 and into the outlet fluid chamber 144. The outlet valve housing 130 also includes an annular wall 150 extending axially beyond the outlet valve seat 140 and away from the eccentric chamber 50 to define a second throat 152 receiving an outlet spring retainer 156.
The outlet spring retainer 156 is shown in detail on
The outlet spring retainer 156 also includes a plurality of tapered posts 170 extending axially away from the eccentric chamber 50 to engage an outlet cap 172 for holding the piston pump 68 in the pump bore 66 of the HCU block 32. The tapered posts 170 are configured to deform by a predetermined amount during assembly to maintain the piston pump 68 at a fixed positon in the pump bore 66 and to prevent rattle. In other words, the deformation of the tapered posts 170 maintains a compressive force between several components of the piston pump 68, which maintains those components at fixed locations within the HCU block 32. As shown in
An inlet check valve 230 is disposed in an inlet valve bore 231 of the HCU block 32 to allow fluid flow into the piston pump 68 while preventing fluid flow in a reverse direction. The inlet check valve 230 is detailed in
An accumulator assembly 240 is associated with each of the piston pumps 68 and functions as a reservoir for excess fluid as a source of stored energy to maintain fluid pressure. Each of the accumulator assemblies 240 is disposed within an associated accumulator bore 241 having a generally cylindrical shape extending into the HCU block 32 through and generally transverse to the bottom face 39 and transverse to the pump axis 70. As detailed on
As detailed in the cross-sectional views of
The hydraulic control unit 30 may also include two or more solenoid valves 220, 222 including an apply valve 220 and a release valve 222, each having a corresponding valve stem 224 protruding from the mating face 36 of the HCU block 32 for being activated by a corresponding magnetic coil in the electronic control unit 20.
The hydraulic control unit 30 also includes a pump sump 260 having a sump bore 262 with a stepped cylindrical shape extending into the HCU block 32 for holding any fluid that weeps beyond the gland seal 120 of the piston pumps 68. As shown in
In one embodiment of the hydraulic control unit, and as shown in
In another embodiment, and as shown in
As best shown in the embodiment of
Since the electric motor 42 will create some level of vibrations and since changes in temperature can affect the overall length of the electric motor 42, it is critical to use a flexible type of terminal to make an electrical connection between the electric motor 42 and the ECU 20.
The intermediate conductors 306 are designed to press fit the terminal tabs 302 of the electric motor 42 upon insertion and remain flexible so that there is no relative motion between the two devices. If the ECU 20 is not required to be separately serviced, there is no need to further confine the motion of the intermediate conductors 306. However, if the ECU 20 is required to be separately serviceable, then due to the force of the press fit terminals, the travel of the flexible intermediate conductors 306 may need to be limited by incorporating a travel stop feature (not shown) in the mounting locating pins.
In the embodiment shown in
In addition, and as best shown in the enlarged view of
In some embodiments, the side wall of the motor bore 40 may define one or more recesses 332 extending parallel to the motor axis 44. The recesses 332 may provide access for tooling to form the second staked lips 196 securing the motor sleeve 210 and the electric motor 42 within the motor bore 40 of the HCU block 32. In some embodiments, and as shown in
One or more of the rubber dampers 330 may have the design shown in
The foregoing invention has been described in accordance with the relevant legal standards, thus the description is exemplary rather than limiting in nature. These antecedent recitations should be interpreted to cover any combination in which the inventive novelty exercises its utility. Variations and modifications to the disclosed embodiment may become apparent to those skilled in the art and do come within the scope of the invention. Accordingly, the scope of legal protection afforded this invention can only be determined by studying the following claims.
Jain, Sourabh, Reuter, David Fredrick, Peddireddi, Sury, Deshpande, Moresh
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Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
Oct 22 2019 | BWI (SHANGHAI) CO., LTD. | (assignment on the face of the patent) | / | |||
Oct 23 2019 | REUTER, DAVID FREDRICK | BWI SHANGHAI CO , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 051270 | /0276 | |
Oct 23 2019 | PEDDIREDDI, SURY | BWI SHANGHAI CO , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 051270 | /0276 | |
Oct 31 2019 | JAIN, SOURABH | BWI SHANGHAI CO , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 051270 | /0276 | |
Oct 31 2019 | DESHPANDE, MORESH | BWI SHANGHAI CO , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 051270 | /0276 |
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